Selective extraction of dysprosium from acidic solutions containing dysprosium and neodymium through emulsion liquid membrane by Cyanex 572 as carrier
-
Add time:07/22/2019 Source:sciencedirect.com
The selective extraction of Dysprosium (Dy) from acidic solutions also containing Neodymium (Nd) was studied using an Emulsion liquid membrane (ELM). Cyanex 572 was successfully applied as carrier. The liquid membrane phase consists of kerosene as diluent, Span 80 as surfactant, Cyanex 572 as carrier, and hydrochloric acid solution as stripping phase. Initially, the effects of different parameters such as carrier concentration, stirring speed, feed phase pH, surfactant concentration and their interactions on Dy extraction were investigated and the values of them were optimized by response surface methodology. Based on the results, the role of pH is very important in the ELM process for extraction of Dy by Cyanex 572. Thereafter, the selectivity of the membrane, represented by extraction, enrichment, and separation factor, was analyzed systematically with a view to optimizing the emulsion stability. The effect of important operating parameters governing the extraction and selectivity in ELM process namely feed phase pH; carrier and stripping phase concentration, initial concentration of Dy and Nd, and time of extraction have been investigated. It was found that it is possible to selectively extract 98.99% of Dy from the acidic feed solution containing Dy and Nd though ELM after 10 min and maximum enrichment and separation factor can be achieved under the optimum conditions.
We also recommend Trading Suppliers and Manufacturers of DYSPROSIUM(III) CHLORIDE HEXAHYDRATE (cas 15059-52-6). Pls Click Website Link as below: cas 15059-52-6 suppliers
Prev:Drivers of maternal accumulation of organohalogen pollutants in Arctic areas (Chukotka, Russia) and 4,4′-DDT effects on the newborns
Next:Synthesis and characterization of novel γ-Fe2O3-NH4[email protected]2(APTMS) nanoparticles for dysprosium adsorption) - 【Back】【Close 】【Print】【Add to favorite 】
- Related Information
- Selective transport of scandium(III) across polymer inclusion membranes with improved stability which contain an amic acid carrier07/31/2019
- Extractant (2-ethylhexyl)(2,4,4′-trimethylpentyl)phosphinic acid (USTB-1): Synthesis and its extraction and separation behaviors for rare earths from chloride media07/30/2019
- Yttrium chloride-modified Au/AC catalysts for acetylene hydrochlorination with improved activity and stability07/29/2019
- Electrochemical synthesis of dysprosium hexacyanoferrate micro stars incorporated multi walled carbon nanotubes and its electrocatalytic applications07/28/2019
- Electrocatalytic reduction of CO2 to CO by Gd(III) and Dy(III) complexes; and M2O3 nanoparticles (M = Gd and Dy)07/27/2019
- Heterogeneous sonocatalytic degradation of anazolene sodium by synthesized dysprosium doped CdSe nanostructures07/26/2019
- Oxidative precipitation of cerium in acidic chloride solutions: part I – Fundamentals and thermodynamics07/25/2019
- Synthesis and characterization of Silica/polyvinyl imidazole/H2PO4-core-shell nanoparticles as recyclable adsorbent for efficient scavenging of Sm(III) and Dy(III) from water07/24/2019
- Synthesis and characterization of novel γ-Fe2O3-NH4[email protected]2(APTMS) nanoparticles for dysprosium adsorption07/23/2019
-
Health and Chemical more >
-
Related Products


